Earth Science Frontiers ›› 2022, Vol. 29 ›› Issue (5): 88-101.DOI: 10.13745/j.esf.sf.2021.9.17
Previous Articles Next Articles
LIU Yong1,2(), LI Guangxue1,2,*(
)
Received:
2020-07-12
Revised:
2021-03-28
Online:
2022-09-25
Published:
2022-08-24
Contact:
LI Guangxue
CLC Number:
LIU Yong, LI Guangxue. Heavy mineral assemblages and migration paths in the surface sediments of the northern East China Sea shelf: Tracer responses to bottom water masses[J]. Earth Science Frontiers, 2022, 29(5): 88-101.
Fig.1 Schematic map of bathymetry,location of sampling stations and the regional circulation pattern during wintertime in the East China Sea shelf. Modified after [24-25].
研究对象 | 不同频数情况下所含的重矿物 | |||
---|---|---|---|---|
丰富(>90%) | 常见(50%~90%) | 少量(10%~<50%) | 稀少(<10%) | |
重矿物 | 赤铁矿、钛铁矿、角闪石、绿帘石、石榴石、榍石、阳起石、透闪石 | 磁铁矿、褐铁矿、褐帘石、电气石、磷灰石、锆石、十字石、云母 | 绿泥石、直闪石、兰闪石、黄铁矿、蓝晶石、金红石、黝帘石 | 硅线石、锐钛矿、符山石、斜黝帘石、菱铁矿、重晶石、刚玉、碳硅石 |
Table 1 Types and frequency of heavy-minerals
研究对象 | 不同频数情况下所含的重矿物 | |||
---|---|---|---|---|
丰富(>90%) | 常见(50%~90%) | 少量(10%~<50%) | 稀少(<10%) | |
重矿物 | 赤铁矿、钛铁矿、角闪石、绿帘石、石榴石、榍石、阳起石、透闪石 | 磁铁矿、褐铁矿、褐帘石、电气石、磷灰石、锆石、十字石、云母 | 绿泥石、直闪石、兰闪石、黄铁矿、蓝晶石、金红石、黝帘石 | 硅线石、锐钛矿、符山石、斜黝帘石、菱铁矿、重晶石、刚玉、碳硅石 |
Fig.3 Distribution patterns of heavy-mineral (A) and dominant minerals,such as hornblende (B),epidotes (C), garnet (D),ZTR index (E) and sphene (F) in the bottom sediments
对比项 | 各分区对比项的值 | ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
长江干道 (铜陵)[ | 长江口[ | 长江三角 洲[ | 南黄海潮流 沙脊[ | 老黄河 三角洲[ | Ⅰ区 | Ⅱ区 | Ⅲ区 | Ⅳ区 | Ⅴ1亚区 | Ⅴ2亚区 | |||
样品数 | 1 | 1 | 128 | 37 | 44 | 15 | 23 | 19 | 26 | 6 | 6 | ||
角闪石颗粒 含量/% | 55.2 | 62.4 | 33.3 | 35.8 | 46.8 | 17.5 | 46.5 | 51.4 | 27.1 | 42.3 | 37.1 | ||
帘石类颗粒 含量/% | 14.9 | 13.8 | 27.3 | 32.7 | 16.2 | 11.2 | 33.9 | 22.6 | 23.2 | 28.9 | 20.6 | ||
金属矿物 颗粒含量/% | 18.9 | 7.9 | 9.1 | 9.3 | 5.7 | 2.11 | 10.2 | 7.4 | 6.1 | 9.5 | 6.8 | ||
稳定矿物 颗粒含量/% | 5.6 | 3.0 | 1.5 | 3.8 | 3.8 | 2.59 | 6.3 | 4.1 | 2.8 | 4.2 | 3.7 | ||
片状矿物 颗粒含量/% | 1.8 | 7.7 | 10.9 | 6.3 | 5.5 | 12.2 | 1.6 | 2.1 | 3.4 | 1.8 | 2.9 |
Table 2 The average content of dominant heavy mineral species in the study area and its comparison with the main source area of SWCIM
对比项 | 各分区对比项的值 | ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
长江干道 (铜陵)[ | 长江口[ | 长江三角 洲[ | 南黄海潮流 沙脊[ | 老黄河 三角洲[ | Ⅰ区 | Ⅱ区 | Ⅲ区 | Ⅳ区 | Ⅴ1亚区 | Ⅴ2亚区 | |||
样品数 | 1 | 1 | 128 | 37 | 44 | 15 | 23 | 19 | 26 | 6 | 6 | ||
角闪石颗粒 含量/% | 55.2 | 62.4 | 33.3 | 35.8 | 46.8 | 17.5 | 46.5 | 51.4 | 27.1 | 42.3 | 37.1 | ||
帘石类颗粒 含量/% | 14.9 | 13.8 | 27.3 | 32.7 | 16.2 | 11.2 | 33.9 | 22.6 | 23.2 | 28.9 | 20.6 | ||
金属矿物 颗粒含量/% | 18.9 | 7.9 | 9.1 | 9.3 | 5.7 | 2.11 | 10.2 | 7.4 | 6.1 | 9.5 | 6.8 | ||
稳定矿物 颗粒含量/% | 5.6 | 3.0 | 1.5 | 3.8 | 3.8 | 2.59 | 6.3 | 4.1 | 2.8 | 4.2 | 3.7 | ||
片状矿物 颗粒含量/% | 1.8 | 7.7 | 10.9 | 6.3 | 5.5 | 12.2 | 1.6 | 2.1 | 3.4 | 1.8 | 2.9 |
[1] |
MORTON A C, HALLSWORTH C R. Processes controlling the composition of heavy mineral assemblages in sandstones[J]. Sedimentary Geology, 1999, 124(1/2/3/4): 3-29.
DOI URL |
[2] |
SVENDSEN J B, HARTLEY N R. Synthetic heavy mineral stratigraphy: applications and limitations[J]. Marine and Petroleum Geology, 2002, 19(4): 389-405.
DOI URL |
[3] |
GARZANTI E, ANDÒ S, VEZZOLI G. Settling equivalence of detrital minerals and grain-size dependence of sediment composition[J]. Earth and Planetary Science Letters, 2008, 273(1/2): 138-151.
DOI URL |
[4] |
NIE J S, HORTON B K, SAYLOR J E, et al. Integrated provenance analysis of a convergent retroarc foreland system: U-Pb ages, heavy minerals, Nd isotopes, and sandstone compositions of the Middle Magdalena Valley Basin, northern Andes, Colombia[J]. Earth-Science Reviews, 2012, 110(1/2/3/4): 111-126.
DOI URL |
[5] | NECHAEV V, DERKACHEV A N. Heavy-mineral assemblages in quaternary sediments of the Philippine Sea as indicators of subduction/collision-related tectonics[M]// Geology and geophysics of the Philippine Sea. Tokyo: Terra Scientific Publishing Company (Terrapub), 1995: 215-233. |
[6] | DERKACHEV A N, NIKOLAEVA N A. Chapter 17 Multivariate analysis of heavy mineral assemblages of sediments from the marginal seas of the Western Pacific[J]. Developments in Sedimentology, 2007, 58: 439-464. |
[7] |
YANG S Y, WANG Z B, DOU Y G, et al. A review of last glacial sedimentation on the continental shelf of eastern China[J]. Geological Society, London, Memoirs, 2014, 41(1): 293-303.
DOI URL |
[8] | SAITO Y. Sedimentary environment and budget in the East China Sea[J]. Bulletin of Coast Oceanology, 1998, 36: 43-58. |
[9] |
HANEBUTH T, STATTEGGER K, GROOTES P M. Rapid flooding of the sunda shelf: a late-glacial sea-level record[J]. Science, 2000, 288(5468): 1033-1035.
DOI URL |
[10] | LAMBECK K, ROUBY H, PURCELL A, et al. Sea level and global ice volumes from the Last Glacial Maximum to the Holocene[J]. Proceedings of the National Academy of Sciences of the United States of America, 2014, 111 (43): 15296-15303. |
[11] | 李铁刚, 江波, 孙荣涛, 等. 末次冰消期以来东黄海暖流系统的演化[J]. 第四纪研究, 2007, 27(6): 945-954. |
[12] |
DOU Y G, YANG S Y, LIM D I, et al. Provenance discrimination of last deglacial and Holocene sediments in the southwest of Cheju Island, East China Sea[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2015, 422: 25-35.
DOI URL |
[13] |
LI G X, LI P, LIU Y, et al. Sedimentary system response to the global sea level change in the East China Seas since the last glacial maximum[J]. Earth-Science Reviews, 2014, 139: 390-405.
DOI URL |
[14] | 刘健, 李绍全, 王圣洁, 等. 末次冰消期以来黄海海平面变化与黄海暖流的形成[J]. 海洋地质与第四纪地质, 1999, 19(1): 13-24. |
[15] | 刘健, 秦华峰, 孔祥淮, 等. 黄东海陆架及朝鲜海峡泥质沉积物的磁学特征比较研究[J]. 第四纪研究, 2007, 27(6): 1031-1039. |
[16] |
WANG H Y, ZHANG L L, XIANG R, et al. Holocene paleoenvironmental changes in mud area southwest off Cheju Island, East China Sea: evidence from benthic foraminiferal assemblages and stable isotope records[J]. Marine Geology, 2020, 429: 106319.
DOI URL |
[17] |
DEMASTER D J, MCKEE B A, NITTROUER C A, et al. Rates of sediment accumulation and particle reworking based on radiochemical measurements from continental-shelf deposits in the East China Sea[J]. Continental Shelf Research, 1985, 4(1/2): 143-158.
DOI URL |
[18] |
ALEXANDER C R, DEMASTER D J, NITTROUER C A. Sediment accumulation in a modern epicontinental-shelf setting: the Yellow Sea[J]. Marine Geology, 1991, 98(1): 51-72.
DOI URL |
[19] | 申顺喜, 陈丽蓉, 高良, 等. 南黄海冷涡沉积和通道沉积的发现[J]. 海洋与湖沼, 1993, 24(6): 563-570. |
[20] |
MILLIMAN J D, BEARDSLEY R C, YANG Z S, et al. Modern Huanghe-derived muds on the outer shelf of the East China Sea: identification and potential transport mechanisms[J]. Continental Shelf Research, 1985, 4(1/2): 175-188.
DOI URL |
[21] |
LEE H J, CHOUGH S K. Sediment distribution, dispersal and budget in the Yellow Sea[J]. Marine Geology, 1989, 87(2/3/4): 195-205.
DOI URL |
[22] |
LIU J, ZHU R X, LI G X. Rock magnetic properties of the fine-grained sediment on the outer shelf of the East China Sea: implication for provenance[J]. Marine Geology, 2003, 193 (3/4), 195-206.
DOI URL |
[23] | 向荣, 杨作升, SAITO Y, 等. 海洋科学: 济州岛西南泥质区近2300 a来环境敏感粒度组分记录的东亚冬季风变化[J]. 中国学术期刊文摘, 2007, 13(5): 97-98. |
[24] | YUAN D L, HSUEH Y. Dynamics of the cross-shelf circulation in the Yellow and East China Seas in winter[J]. Deep Sea Research Part Ⅱ: Topical Studies in Oceanography, 2010, 57(19/20): 1745-1761. |
[25] |
LIU S D, QIAO L L, LI G X, et al. Distribution and cross-front transport of suspended particulate matter over the inner shelf of the East China Sea[J]. Continental Shelf Research, 2015, 107: 92-102.
DOI URL |
[26] | 李家彪. 东海区域地质[M]. 北京: 海洋出版社, 2008: 63-65. |
[27] |
YUAN D L, ZHU J R, LI C Y, et al. Cross-shelf circulation in the Yellow and East China Seas indicated by MODIS satellite observations[J]. Journal of Marine Systems, 2008, 70(1/2): 134-149.
DOI URL |
[28] | YUAN D L, QIAO F L, SU J. Cross-shelf penetrating fronts off the southeast coast of China observed by MODIS[J]. Geophysical Research Letters, 2005, 32: L19603. |
[29] | HE L, LI Y, ZHOU H, et al. Variability of cross-shelf penetrating fronts in the East China Sea[J]. Deep Sea Research Part Ⅱ: Topical Studies in Oceanography, 2010, 57(19/20): 1820-1826. |
[30] |
HOSHIKA A, TANIMOTO T, MISHIMA Y, et al. Variation of turbidity and particle transport in the bottom layer of the East China Sea[J]. Deep Sea Research Part II: Topical Studies in Oceanography, 2003, 50(2): 443-455.
DOI URL |
[31] |
DONG L X, GUAN W B, CHEN Q, et al. Sediment transport in the Yellow Sea and East China Sea[J]. Estuarine, Coastal and Shelf Science, 2011, 93(3): 248-258.
DOI URL |
[32] |
PANG C G, LI K, HU D X. Net accumulation of suspended sediment and its seasonal variability dominated by shelf circulation in the Yellow and East China Seas[J]. Marine Geology, 2016, 371: 33-43.
DOI URL |
[33] | QU TD, HU D X. Upwelling and sedimentation dynamics Ⅱ. A simple model[J]. Journal of Oceanology and Limnology, 1993, 4: 289-295. |
[34] |
YANAGI T, SHIMIZU T, MATSUNO T. Baroclinic eddies south of Cheju Island in the East China Sea[J]. Journal of Oceanography, 1996, 52(6): 763-769.
DOI URL |
[35] | 胡敦欣, 丁宗信, 熊庆成. 东海北部一个夏季气旋型涡旋的初步分析[G]//海洋科学集刊. 北京: 科学出版社, 1984, 21: 87-99. |
[36] | MANGE M A, MAURER H F W. Heavy minerals in colour[M]. London: Chapman and Hall, 1992: 4-10. |
[37] | 秦蕴珊, 赵一阳, 陈丽蓉, 等. 东海地质[M]. 北京: 科学出版社, 1987: 38-60. |
[38] | 李广雪, 杨子赓, 刘勇. 中国东部海域海底沉积环境成因研究[M]. 北京: 科学出版社, 2005: 17-29. |
[39] |
QIN Y C, XUE C T, JIANG X J. Tidal Current-dominated depositional environments in the central-northern Yellow Sea as revealed by heavy-mineral and grain-size dispersals[J]. Marine Geology, 2018, 398: 59-72.
DOI URL |
[40] | 陈丽蓉. 中国海沉积矿物学[M]. 北京: 海洋出版社, 2008: 121-131. |
[41] | 张凯棣, 李安春, 董江, 等. 东海表层沉积物碎屑矿物组合分布特征及其物源环境指示[J]. 沉积学报, 2016, 34(5): 902-911. |
[42] |
WILKIN R T, BARNES H L. Formation processes of framboidal pyrite[J]. Geochimica et Cosmochimica Acta, 1997, 61(2): 323-339.
DOI URL |
[43] | FANG G H, ZHAO B R, ZHU Y H. Water volume transport through the Taiwan Strait and the continental skelf of the East China Sea measured with current meters[M]// Oceanography of Asian Marginal Seas. Amsterdam: Elsevier, 1991: 345-358. |
[44] | 王中波, 杨守业, 李萍, 等. 长江水系沉积物碎屑矿物组成及其示踪意义[J]. 沉积学报, 2006, 24(4): 570-578. |
[45] | 王孟瑶, 金秉福, 岳伟. 长江口表层沉积物重矿物在不同粒级中的分布与研究意义[J]. 海洋学报, 2019, 41(11): 89-100. |
[46] | 窦衍光, 王昆山, 王国庆, 等. 长江水下三角洲沉积物碎屑矿物研究[J]. 海洋科学, 2007, 31(4): 22-26, 31. |
[47] | 王昆山, 姜晓黎, 叶青, 等. 南黄海潮流沙脊区表层沉积物重矿物分布及来源[J]. 海洋地质与第四纪地质, 2013, 33(5): 1-11. |
[48] | 王昆山, 石学法, 林振宏. 南黄海和东海北部陆架重矿物组合分区及来源[J]. 海洋科学进展, 2003, 21(1): 31-40. |
[49] | 潘玉球, 黄树生. 水团相互作用与东海高密水环流的演变[J]. 东海海洋, 1997, 15(2): 1-14. |
[50] | 邹娥梅, 郭炳火, 汤毓祥, 等. 秋季南黄海水文特征及海水的混合与交换[J]. 海洋学报, 1999, 21(5): 12-21. |
[51] | 王昆山, 金秉福, 石学法, 等. 杭州湾表层沉积物碎屑矿物分布及物质来源[J]. 海洋科学进展, 2013, 31(1): 95-104. |
[52] | CHEN C T A, SHEU D D. Does the Taiwan warm current originate in the Taiwan strait in wintertime?[J]. Journal of Geophysical Research Atmospheres, 2006, 111(C4): C04005. |
[53] | ZHU J R, CHEN C S, DING P X, et al. Does the Taiwan warm current exist in winter?[J]. Geophysical Research Letters, 2004, 31(12): L12302. |
[54] | YUAN Y C, SU J L, XIA S Y. Three dimensional diagnostic calculation of circulation over the East China Sea shelf[J]. Acta Oceanologica Sinica, 1987, 6 (Suppl 1): 36-50. |
[55] | 郭炳火, 李兴宰, 李载学. 夏季对马暖流区黑潮水与陆架水的相互作用: 兼论对马暖流的起源[J]. 海洋学报, 1998, 20(5): 1-12. |
[56] | 于非, 臧家业, 郭炳火, 等. 黑潮水入侵东海陆架及陆架环流的若干现象[J]. 海洋科学进展, 2002, 20(3): 21-28. |
[57] | 郭志刚, 杨作升, 张东奇, 等. 冬、夏季东海北部悬浮体分布及海流对悬浮体输运的阻隔作用[J]. 海洋学报, 2002, 24(5): 71-80. |
[58] |
CHANG P H. A numerical study on the Changjiang diluted water in the Yellow and East China Seas[J]. Journal of Geophysical Research Atmospheres, 2003, 108(C9): 3299.
DOI URL |
[59] | XIA C S, QIAO F L, YANG Y Z, et al. Three-dimensional structure of the summertime circulation in the Yellow Sea from a wave-tide-circulation coupled model[J]. Journal of Geophysical Research Atmospheres, 2006, 111(C11): C11S03. |
[1] | BENG Gui-Dong, FU Xiao-Fei, HU Cai-Zhi. Research status of polygonal fault systems. [J]. Earth Science Frontiers, 2010, 17(4): 50-63. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||